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The operator precedence tables just show the bitwise shift operators << and >>. These are the same as the output operators, right?

In fact, it just so happens that C++ overloads these same operators to mean input/output, right? This is more of a tradition than anything more strict, isn't it?

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Yes, same operators, different purpose. –  chris Jan 13 '13 at 10:30
    
why not add this as an answer? –  Zoltán Jan 13 '13 at 10:48

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up vote 2 down vote accepted

I'm sure the origin of using << and >> as operators for output is to do with two things.

  1. It looks sensible.
  2. The operators << and >> are not that commonly used in "regular code". So they are available. It would be a real pain if they used operator +, -, * or /, since you couldn't write cout + "The result is : x + y + endl; and get x + y as the output. It's much less common than you write cout << "The result is : " << x << y << endl; - in this case, you'd have to use parenthesis: cout << "The result is : " << (x << y) << endl;

The order of operator precedence is defined by the language, no matter how you use the operators - which is one reason you don't want to use operator overload to do "strange" things in general - because it's easy to get something you don't really expect...

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